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interface I { int J(); }

class A : I
{
   public  int J(){return 0; }  // note NOT virtual (and I can't change this)
}

class B : A, I
{
   new public int J(){return 1; }
}


B b = new B();
A a = b;
I ib = b, ia = a;

b.J(); // should give 1
a.J(); // should give 0 (IMHO)

ia.J(); // ???
ib.J(); // ???

I know I could just try it but I'm looking for a good authoritative source for this whole corner and I'd rather not just start myopically digging through the MSDN texts (I haven't a clue what to Google for).

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Implementing the interface and using the 'new' qualifier is both redundant and confusing. The 'new' implementation is intended to allow a sub-class to have an implementation that differs from it's base class for cases where it's called explicitly. If the base class explicitly implements the interface then i think you could get (IFace)Child.IMethod() = A; (Base)Child.IMethod() = B; (Child)Child.IMethod = C –  STW May 4 '09 at 23:53
    
You are in error (see my comment on your post) but in short without the "I" on B, I.J is implemented in by A.J even on B (I have tested this) –  BCS May 4 '09 at 23:56
    
You're right, my example was if B:A, not B:A,I... Rather than have B:A,I could you do B:I and use an internal instance of A to provide that functionality and expose it's methods publicly? –  STW May 5 '09 at 0:01
    
I'd rather not. It seems an overly complicated solution for adding a single line of code to Distruct() –  BCS May 5 '09 at 0:02

3 Answers 3

up vote 1 down vote accepted

It does not matter that you are talking to the contract provided by a base class or interface they will all return 1 because you are talking to an instance of class B.

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do you have a link to an official reference? I'm more looking for "the rest of the story" than this exact question. –  BCS May 4 '09 at 22:58
    
C# is a single dispatch language meaning the method to be invoked is determined by the type of the object in all your cases the type is B. –  John Downey May 8 '09 at 11:13

Rewritten: Since we're talking about implementing IDisposable what really matters is ensuring that both the Derived and Base classes have the opportunity to run their respective cleanup code. This example will cover 2/3 of the scenario's; however since it derives from Base() and Base.Dispose() is not virtual, calls made to ((Base)Child).Dispose() will not provide the Child class with the chance to cleanup.

The only workaround to that is to not derive Child from Base; however that's been ruled out. Calls to ((IDisposable)Child).Dispose() and Child.Dispose() will allow both Child and Base to execute their cleanup code.

class Base : IDisposable
{
    public void Dispose()
    {
        // Base Dispose() logic
    }
}

class Child : Base, IDisposable
{
    // public here ensures that Child.Dispose() doesn't resolve to the public Base.Dispose()
    public new void Dispose()
    {
        try
        {
            // Child Dispose() logic
        }

        finally
        {
            // ensure that the Base.Dispose() is called
            base.Dispose();
        }
    }

    void IDisposable.Dispose()
    {
        // Redirect IDisposable.Dispose() to Child.Dispose()
        Dispose();
    }
}
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I can't alter the base class (it's one of .NET's class) and the method in question is NOT virtual so I can't do your best practices in this case. Also in the non virtual case, going from "B : A, I" to "B : A" alters stuff (I tested it and to get the new J to be used, the explicit "I" is needed. –  BCS May 4 '09 at 23:53
    
What .NET class are you working with? An actual example might be more helpful than a math story-problem :) –  STW May 4 '09 at 23:56
    
I'm trying to add stuff to the IDisposable actions for FileSystemWatcher. –  BCS May 5 '09 at 0:00
    
All updated, knowing the particulars got my head out of the "should do" and into the "need to do" –  STW May 5 '09 at 0:11

Jeffrey Richter (CLR via C#): "The C# compiler requires that a method that implements an interface be marked as public . The CLR requires that interface methods be marked as virtual . If you do not explicitly mark the method as virtual in your source code, the compiler marks the method as virtual and sealed; this prevents a derived class from overriding the interface method . If you explicitly mark the method as virtual, the compiler marks the method as virtual (and leaves it unsealed); this allows a derived class to override the interface method"

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